Literature DB >> 24016855

Intestinal mucosa permeability following oral insulin delivery using core shell corona nanolipoparticles.

Xiuying Li1, Shiyan Guo, Chunliu Zhu, Quanlei Zhu, Yong Gan, Jukka Rantanen, Ulrik Lytt Rahbek, Lars Hovgaard, Mingshi Yang.   

Abstract

Chitosan nanoparticles (NC) have excellent capacity for protein entrapment, favorable epithelial permeability, and are regarded as promising nanocarriers for oral protein delivery. Herein, we designed and evaluated a class of core shell corona nanolipoparticles (CSC) to further improve the absorption through enhanced intestinal mucus penetration. CSC contains chitosan nanoparticles as a core component and pluronic F127-lipid vesicles as a shell with hydrophilic chain and polyethylene oxide PEO as a corona. These particles were developed by hydration of a dry pluronic F127-lipid film with NC suspensions followed by extrusion. Insulin nested inside CSC was well protected from enzymatic degradation. Compared with NC, CSC exhibited significantly higher efficiency of mucosal penetration and, consequently, higher cellular internalization of insulin in mucus secreting E12 cells. The cellular level of insulin after CSC treatment was 36-fold higher compared to treatment with free insulin, and 10-fold higher compared to NC. CSC significantly facilitated the permeation of insulin across the ileum epithelia, as demonstrated in an ex vivo study and an in vivo absorption study. CSC pharmacological studies in diabetic rats showed that the hypoglycemic effects of orally administrated CSC were 2.5-fold higher compared to NC. In conclusion, CSC is a promising oral protein delivery system to enhance the stability, intestinal mucosal permeability, and oral absorption of insulin.
Copyright © 2013 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Cellular uptake; Core shell corona; Insulin; Mucus penetrating particles; Oral protein delivery

Mesh:

Substances:

Year:  2013        PMID: 24016855     DOI: 10.1016/j.biomaterials.2013.08.048

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  16 in total

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